BACKGROUND OF THE INVENTION
Field of the Invention
[0001] This invention relates to novel fused pyrroiecarboxamides which selectively bind
to GABAa receptors. This invention also relates to pharmaceutical compositions comprising
such compounds. It further relates to the use of such compounds for the preparation
of a pharmaceutical composition for treating anxiery, sleep and seizure disorders,
overdoses of benzodiazepine and enhancing memory.
Description of the Related Art
[0002] γ-Aminobutyric acid (GABA) is regarded as one of the major inhibitory amino acid
transmitters in the mammalian brain. Over 30 years have elapsed since its presence
in the brain was demonstrated (Roberts & Frankel, J. Biol. Chem
187: 55-63, 1950; Udenfriend, J. Biol. Chem.
187: 65-69, 1950). Since that time, an enormous amount of effort has been devoted to
implicating GABA in the etiology of seizure disorders, sleep, anxiety and cognition
(Tallman and Gallager, Ann. Rev. Neuroscience
8: 21-44, 1985). Widely, although unequally, distributed through the mammalian brain,
GABA is said to be a transmitter at approximately 30% of the synapses in the brain.
In most regions of the brain, GABA is associated with local inhibitory neurons and
only in two regions is GABA associated with longer projections. GABA mediates many
of its actions through a complex of proteins localized both on cell bodies and nerve
endings: these are called GABAa receptors. Postsynaptic responses to GABA are mediated
through alterations in chloride conductance that generally, although not invariably,
lead to hyperpolarization of the cell. Recent investigations have indicated that the
complex of proteins associated with postsynaptic GABA responses is a major site of
action for a number of structurally unrelated compounds capable of modifying postsynaptic
responses to GABA. Depending on the mode of interaction, these compounds are capable
of producing a spectrum of activines (either sedative, anxiolytic, and anticonvulsant,
or wakefulness, seizures, and anxiety)
[0003] 1,4-Benzodiazepines continue to be among the most widely used drugs in the world.
Principal among the benzodiazepines marketed are chlordiazepoxide, diazepam, flurazepam,
and triazolam. These compounds are widely used as anxiolynes, sedative-hypnotics,
muscle relaxants, and anticonvulsants. A number of these compounds are extremely potent
drugs: such potency indicates a site of action with a high affinity and specificity
for individual receptors. Early electrophysiological studies indicated that a major
action of benzodiazepines was enhancement of GABAergic inhibition. The benzodiazepines
were capable of enhancing presynaptic inhibition of a monosynaptic ventral root reflex,
a GABA-mediated event (Schmidt et al., 1967, Arch, Exp. Path. Pharmatol.
258: 69-82). All subsequent electrophysiological studies (reviewed in Tallman et al.
1980, Science
207: 274-81, Haefley et al., 1981. Handb. Exptl. Pharmacol.
33: 95-102) have generally confirmed this finding, and by the mid-1970s, there was a
general consensus among electrophysiologists that the benzodiaezpines could enhance
the actions of GABA.
[0004] With the discovery of the "receptor" for the benzodiazepines and the subsequent definition
of the nature of the interaction between GABA and the benzodiazepines, it appears
that the behaviorally important interactions of the benzodiazepines with different
neurotransmitter systems are due in a large pen to the enhanced ability of GABA itself
to modify these systems. Each modified system, in turn, may be associated with the
expression of a behavior.
[0005] Studies on the mechanistic nature of these interactions depended on the demonstration
of a high-affinity benzodiazepine binding site (receptor). Such a receptor is present
in the CNS of all vertebrates phylogenetically newer than the boney fishes (Squires
& Braestrup 1977. Nature
166: 732-34, Mohler & Okada, 1977, Science
198: 854-51. Mohler & Okada, 1977. Br. 1. Psychiatry
133: 261-68). By using tritiated diazepam, and a variety of other compounds, it has been
demonstrated that these benzodiazepine binding sites fulfill many of the criteria
of pharmacological receptors; binding to these sites
in vitro is rapid, reversible, stereospecific, and santrable. More importantly, highly significant
correlations have been shown between the ability of benzodiazepines to displace diazepam
from its binding site and activity in a number of animal behavioral tests predictive
of benzodiazepine potency (Braestrup & Squires 1978. Br. J. Psychiatry
133: 249-60, Mohler & Okada 1977, Science
198: 854-51, Mohler & Okada, 1977. Br. J. Psychiatry
133: 261-68). The average therapeutic doses of these drugs in man also correlate with
receptor potency (Tallman et al. 1980. Science
207: 274-281).
[0006] In 1978, it became clear that GABA and related analogs could interact at me low affinity
(1 mM) GABA binding site to enhance the binding of benzodiazepines to the cionazepam-sensitive
site (Tallman et al. 1978. Nature,
274: 383-85). This enhancement was caused by an increase in the affinity of the benzodiazepine
binding site due to occupancy of the GABA site. The data were interpreted to mean
that both GABA and benzodiazepine sites were allosterically linked in the membrane
as part of a complex of proteins. For a number of GABA analogs, the ability to enhance
diazepam binding by 50% of maximum and the ability to inhibit the binding of GABA
to brain membranes by 50% could be directly correlated. Enhancement of benzodiazepine
binding by GABA agonists is blocked by the GABA receptor antegonist (+) bicuculline;
the stereoisomer (-) bicuculline is much less active (Tallman et al., 1978, Nature,
274: 383-85).
[0007] Soon after the discovery of high affinity binding sites for the benzodiazepines,
it was discovered that a triazolopyridazine could interact with benzodiazepine receptors
in a number of regions of the brain in a manner consistent with receptor heterogeneity
or negative cooperativity. In these studies, Hill coefficients significantly less
than one were observed in a number of brain regions, including cortex, hippocampus,
and striarum. In cerebellum, triazolopyridazine interacted with benzodiazepine sites
with a Hill coefficient of 1 (Squires et al., 1979, Pharma. Biochem. Behav.
10: 825-30, Klepner et al. 1979, Pharmacol. Biochem. Behav.
11: 457-62). Thus, multiple benzodiazepine receptors were predicted in the cortex, hippocampus,
striatum, but not in the cerebellum.
[0008] Based on these studies, extensive receptor autoradiographic localization studies
were carried out at a light microscopic level. Although receptor heterogeneity has
been demonstrated (Young & Kuhar 1980. J. PharmacoL Exp. Ther. 212: 337-46. Young
et al., 1981 J. Pharmacol Exp. ther
216: 425-430, Nieboff et al. 1982. J. Pharmacol. Exp. Ther.
221: 670-75), no simple correlation between localization of receptor subtypes and the
behaviors associated with the region has emerged from the early studies. In addition,
in the cerebellum, where one receptor was predicted from binding studies, alltendiography
revealed heterogeneity of receptors (Niehoff et al., 1982. J. Pharmacol. Exp. Ther.
221: 670-75).
[0009] A physical basis for the differences in drug specificity for the two apparent subtypes
of benzodiazepine sites has been demonstrated by Sieghart & Karobath, 1980. Nature
286: 285-87. Using gel electrophoresis in the presence of sodium dodecyl sulfate, the
presence of several molecular weight receptors for the benzodiazepines has been reported.
The receptors were identified by the covalent incorporation of radioactive flunitrazepam,
a benzodiazepine which can covalently label all receptor types. The major labeled
bands have molecular weights of 50.000 to 53.000, 55,000, and 57,000 and the triazolopyridazines
inhibit labeling of the slightly higher molecular weight forms (53,000, 55.000. 57,000)
(Seighart et al. 1983, Eur. J. Pharmacol.
88: 291-99).
[0010] At that time, the possibility was raised that the multiple forms of the receptor
represent "isoreceptors" or multiple allelic forms of the receptor (Tallman & Gallager
1985, Ann. Rev. Neurosci.
8, 21-44). Although common for enzymes, genetically distinct forms of receptors have
not generally been described. As we begin to study receptors using specific radioactive
probes and electrophoretic techniques, it is almost certain that isoreceptors will
emerge as important in investigations of the etiology of psychiatric disorders in
people.
[0011] The GABAa receptor subunits have been cloned from bovine and human cDNA libraries
(Schoenfield et al., 1988; Duman et al., 1989). A number of distinct cDNAs were identified
as subunits of the GABAa receptor complex by cloning and expression. These are categorized
into α, β, γ, δ, ε, and provide a molecular basis for the GABAa receptor heterogeneity
and distinctive regional pharmacology (Shivvers et al., 1980; Levitan et al., 1989).
The γ subunit appears to enable drugs like benzodiazepines to modify the GABA responses
(Pritchett et al., 1989). The presence of low Hill coefficients in the binding of
ligands to the GABAa receptor indicates unique profiles of subtype specific pharmacological
action.
[0012] Drugs that interact at the GABAa receptor can possess a spectrum of pharmacological
activities depending on their abilities to modify the actions of GABA. For example,
the bela-carbolines were first isolated based upon their ability to inhibit competitively
the binding of diazepam to its binding site (Nielsen et al., 1979, Life Sci.
25: 679-86). The receptor binding assay is not totally predictive about the biological
activity of such compounds; agonists, partial agonists, inverse agonists, and antagonists
can inhibit binding. When the beta-carboline structure was determined, it was possible
to synthesize a number of analogs and test these compounds behaviorally. It was immediately
realized that the beta-carbolines could antagonize the actions of diazepam behaviorally
(Tenen & Hirsch. 1980, Nature
288: 609-10). in addition to this antagonism, beta-carbolines possess intrinsic activity
of their own opposite to that of the benzodiazepines; they become known as inverse
agonists.
[0013] In addition, a number of other specific antagonists of the benzodiazepine receptor
were developed based on their ability to inhibit the binding of benzodiazepines. The
best studied of these compounds is an imidazodiazepine (Hunkeler et al., 1981, Nature
290: 514-516). This compound is a high affinity competitive inhibitor of benzodiazepine
and beta-carboline binding and is capable of blocking the pharmacological actions
of both these classes of compounds. By itself, it possesses little intrinsic pharmacological
activity in animals and humans (Hunkeler et al., 1981, Nature
290: 514-16; Darragh et al., 1983, Eur. J. Clin. Pharmacol.
14: 569-70). When a radiolabeled form of this compound was studied (Mohler & Richards,
1981, Nature
294: 763-65), it was demonstrated that this compound would interact with the same number
of sites as the benzodiazepines and beta-carbolines, and that the interactions of
these compounds were purely competitive. This compound is the ligand of choice for
binding to GABAa receptors because it does not possess receptor subtype specificity
and measures each state of the receptor.
[0014] The study of the interactions of a wide variety of compounds similar to the above
has led to the categorizing of these compounds. Presently, those compounds possessing
activity similar to the benzodiazepines are called agonists. Compounds possessing
activity opposite to benzodiazepines are called inverse agonists, and the compounds
blocking both types of activity have been termed antagonists. This categorization
has been developed to emphasize the fact that a wide variety of compounds can produce
a spectrum of pharmacological effects, to indicate that compounds can interact at
the same receptor to produce opposite effects, and to indicate that beta-carbolines
and antagonists with intrinsic anxiogenic effects are not synonymous.
[0015] A biochemical test for the pharmacological and behavioral properties of compounds
that interact with the benzodiazepine receptor continues to emphasize the interaction
with the GABAergic system. In contrast to the benzodiazepines, which show an increase
in their affinity due to GABA (Tallman et al., 1978. Nature
274: 383-85. Tallman et al., 1980, Science
207: 274-81), compounds with antagonist properties show little GABA shift (i.e., change
in receptor affinity due to GABA) (Mohler & Richards.1981, Nature
294: 763-65), and the inverse agonists actually show a decrease in affinity due to GABA
(Braestrup & Nielson 1981. Nature
294: 472-474). Thus, the GABA shift predicts generally the expected behavioral properties
of the compounds.
[0016] Various compounds have been prepared as benzodiazepine agonists and antagonists.
For Example, U.S. Patents Nos. 3,455,943, 4,435,403, 4,596,808, 4,623,649, and 4,719,210,
German Patent No. DE 3,246,932, and Liebigs Ann. Chem.
1986, 1749 teach assorted benzodiazepine agonists and antagonists and related anti-depressant
and central nervous system active compounds.
[0017] U.S. Patent No. 3,455,943 discloses compounds of the formula:

wherein R
1 is a member of the group consisting of hydrogen and lower alkoxy; R
2 is a member of the group consisting of hydrogen and lower alkoxy; R
3 is a member of the group consisting of hydrogen and lower alkyl; and X is a divalent
radical selected from the group consisting of

and

and the non-toxic acid addition salts thereof.
[0018] Other references, such as U.S. Patent No. 4.435.403 and German patent DE 3.246.932
disclose compounds containing the following structural skeleton:

where A is carbon or nitrogen.
[0019] A variety of indole-3-carboxamides are described in the literature. For example.
J Org. Chem.,
42: 1883-1885 (1977) discloses the following compounds.

[0020] J. Heterocylic Chem.,
14: 519-520 (1977) discloses a compound of the following formula:

[0021] None of these indole-3-carboxamides includes an oxy substiuent at the 4-position
of the indole ring.
[0022] International Publication No. WO 95/11885 discloses pyrrole derivatives of the following
general formula:

The compounds are described as being agonists, antagonists or inverse agonists for
GABAa brain receptors. The reference states that the compounds are, therefore, useful
in the diagnosis and treatment of anxiety, sleep and seizure disorders, overdose with
benzodiazepine drugs and for enhancement of memory.
SUMMARY OF THE INVENTION
[0023] This invention provides novel compounds of Formula I which interact with a GABAa
binding site, the benzodiazepine receptor.
[0024] The invention provides pharmaceutical compositions comprising compounds of Formula
I. The compounds of the invention are suitable for the diagnosis and treatment of
anxiety, sleep and seizure disorders, overdose with benzodiazepine drugs and for enhancement
of memory. Accordingly, a broad embodiment of the invention is directed to compounds
of general Formula I:

or the pharmaceutically acceptable non-toxic salts thereof wherein:
G represents

where Ra and Rb independently represent hydrogen or C1-6 alkyl; and e is an integer of 2-3;
or

where Ra represents hydrogen, C1-6 alkyl, or C3-7 cycloalkyl;
Rb represents hydrogen, C1-6 alkyl, or acyl;
Y and Y' independently represent hydrogen or halogen; and
e is an integer of 1-3;
T is halogen, hydrogen, hydroxyl, amino or C1-6 alkoxy;
X is hydrogen, hydroxyl, or C1-6 alkyl;
represents a carbon chain optionally substituted with hydrogen, halogen, or C1-6 alkyl; wherein n is 0, 1, 2, or 3;
R3, R4, R5, and R6 are the same or different and are selected from hydrogen, C1-6 alkyl, -COR11 or -CO2R11 where R11 is C1-6 alkyl or C3-7 cycloalkyl; or -CONR12R13 where R12 and R13 are selected independently from hydrogen, C1-6 alkyl, C3-7 cycloalkyl, phenyl, 2-, 3-, or 4-pyridyl; or NR12R13 represents a heterocyclic group which is morpholinyl, piperidinyl, pyrrolidinyl,
or N-alkyl piperazinyl; or
R3 -R4 may be taken together to form a cyclic moiety having 3-7 carbon atoms; or
R5 -R6 may be taken together to form a cyclic moiety having 3-7 carbon atoms; and where
each alkyl group forming an R3, R4, R5, or R6 substitutent or portion thereof may be subsisted independently with hydroxy or mono-
or dialkylamino where each alkyl is independently C1-6 alkyl or C3-7 cycloalkyl.
[0025] These compounds are highly selective agonists, antagonists or inverse agonists for
GABAa train receptors or prodrugs of agonists, antagonists of inverse agonists for
GABAa brain receptors. In other words, while the compounds of the invention all interact
with GABAa brain receptors, they do not display idendcti physiologic activity. Thus,
these compounds are useful in the diagnosis and treatment of anxiety, sleep and seizure
disorders, overdose with benzodiazepine drugs and for enhancement of memory. For example,
these compounds can be used to treat overdoses of benzodiazepine drugs as they would
competitively bind to the benzodiazepine receptor.
DETAILED DESCRIPTION OF THE INVENTION
[0026] The novel compounds encompassed by the instant invention can be described by general
formula I set forth above or the pharmaceutically acceptable non-toxic salts thereof.
[0027] In addition, the present invention encompasses compounds of Formula II

wherein
R
a and R
b independently represent hydrogen or C
1-6 alkyl;
e is an integer of 2-3; and
R
3, R
5 and R
6 independently represent hydrogen, or C
1-6 alkyl.
[0028] The present invention also encompasses compounds of Formula III

wherein G represents

R
a represents hydrogen, C
1-6 alkyl, or C
3-7 cycloalkyl;
R
b represents hydrogen, C
1-6 alkyl, or acyl;
Y and Y' independently represent hydrogen or halogen; and
e is an integer of 1-3.
[0029] The present invention also encompasses compounds of Formula IV

wherein R
3, R
5, and R
6 independently represent hydrogen, or C
1-6 alkyl.
[0030] Preferred G substituents of the invention include the following:

where R
a and R
b independently represent hydrogen or C
1-6 alkyl; and e is an integer of 2-3.
More preferred G substituents of formula A include those where R
a is hydrogen, methyl or ethyl; and R
b is hydrogen. Particularly preferred G substituents of formula A include those where
e is 2; R
a is hydrogen or methyl; and R
b is hydrogen.
[0031] Another preferred G substituent is the following formula:

where R
a represents hydrogen, C
1-6 alkyl, or C
3-7 cycloalkyl;
R
b represents hydrogen, C
1-6 alkyl, or acyl;
Y represents hydrogen or halogen; and
e is an integer of 1-3.
More preferred G substituents of formula B are those where Y is hydrogen or fluorine;
and e is 1 or 2. Particularly preferred G substituents of formula B are those where
Y is hydrogen or fluorine; e is 1 or 2; R
a is hydrogen; C
1-3 alkyl, or cycopropyl and R
b is hydrogen, methyl, or acyl.
[0032] Another preferred G substituent is the following formula:

where R
a represents hydrogen. C
1-6 alkyl, or C
3-7 cycloalkyl;
R
b represents hydrogen, C
1-6 alkyl, or acyl;
Y and Y' independently represent hydrogen or halogen; and
e is an integer of 1-3.
[0033] More preferred G substituents of formula C are those where Y and Y' are independently
hydrogen or fluorine; and e is 1 or 2. Particularly preferred G substituents of formula
C are those where and Y' are independently hydrogen or fluorine; e is 1 or 2; R
a is hydrogen, C
1-3 alkyl, or cyclopropyl, and R
b is hydrogen, methyl, or acyl.
[0034] Representative compounds of the invention are shown below in Table 1.

[0035] The following numbering system is used to identify positions on the pyrrole ring
portion of the compounds of the invention:

[0036] Representative compounds of the present invention, which are encompassed by Formula
I include, but are not limited to the compounds in Table I and their pharmaceutically
acceptable salts. Non-toxic pharmaceutically acceptable salts include salts of acids
such as hydrochloric, phosphoric, hydrobromic, sulfuric, sulfinic, formic, toluenesulfonic,
methanesulfonic, nitric, benzoic, citric, tartaric, maleic, hydroiodic, alkanoic such
as acetic, HOOC-(CH
2)
n-COOH where n is 0-4, and the like. Those skilled in the art will recognize a wide
variety of non-toxic pharmaceutically acceptable addition salts.
[0037] Those skilled in the art will recognize various synthetic methodologies which may
be employed to prepare non-toxic pharmaceutically acceptable addition salts of the
compounds encompassed by Formula I.
[0038] By "alkyl" or "lower alkyl" in the present invention is meant straight or branched
chain alkyl groups having 1-6 carbon atoms, such as, for example, methyl, ethyl, propyl,
isopropyl, n-butyl, sec-butyl, tert-butyl, pentyl, 2-pentyl, isopentyl, neopentyl,
hexyl, 2-hexyl, 3-hexyl, and 3-methylpentyl.
[0039] By "alkoxy" or "lower alkoxy" in the present invention is meant straight or branched
chain alkoxy groups having 1-6 carbon atoms, such as, for example, methoxy, ethoxy,
propoxy, isopmpxy, n-butoxy, sec-butoxy, tert-butoxy, pentoxy, 2-pentyl, isopentoxy,
neopentoxy, hexoxy, 2-hexoxy, 3-hexoxy, and 3-methylpentoxy.
[0040] By "benzoxazinyl" as used herein is meant a moiety of the formula:

[0041] A benzoxazin-6-yl group is depicted.
[0042] By "halogen" in the present invention is meant fluorine, bromine, chlorine, and iodine.
[0043] By "2-hydroxyethoxy" is meant a group of the formula: -OCH
2CH
2OH.
[0044] By "N-alkylpiperazyl" in the invention is meant radicals of the formula:

where R is a straight or branched chain lower alkyl as defined above.
[0045] The pharmaceutical utility of compounds of this invention are indicated by the following
assay for GABAa receptor binding activity.
[0046] Assays are carried out as described in Thomas and Tallman (J. Bio. Chem.
156: 9838-9842, J. Neurosci.
3: 433-440, 1983). Rat cortical tissue is dissected and homogenized in 25 volumes (w/v)
of 0.05 M Tris HCl buffer (pH 7.4 at 4°C). The tissue homogenate is centrifuged in
the cold (4°) at 20,000 x g for 20'. The supernatant is decanted md the pellet is
rehomogenized in the same volume of buffer and again centrifuged at 20.000 x g. The
supernatant is decanted and the pellet is frozen at -20°C overnight. The pellet is
then thawed and rehomogenized in 25 volume (original wt/vol) of buffer and the procedure
is carried out twice. The pellet is finally resuspended in 50 volumes (w/vol of 0.05
M Tris HCl buffer (pH 7.4 at 40°C).
[0047] Incubations contain 100 ml of tissue homogenate, 100 ml of radioligand 0.5 nM (
3H-RO15-1788 [
3H-Flumazenil] specific activity 80 Ci/mmol), drug or blocker and buffer to a total
volume of 500 mL Incubations are carried for 30 min at 4°C then are rapidly filtered
through GFB filters to separate free and bound ligand. Filters are washed twice with
fresh 0.05 M Tris HCl buffer (pH 7.4 at 4°C) and counted in a liquid scintillation
counter. 1.0 mM diazepam is added to some tubes to determine nonspecific binding.
Data art collected in triplicate determinations, averaged and % inhibidon of total
specific binding is calculated. Total Specific Binding = Total · Nonspecific. In some
cases, the amounts of unlabeled drugs is vaned and total displacement curves of binding
are carried out. Data are converted to Ki's; results for compounds of this invention
are listed in Table 2.
Table 2
| Compound Number |
Ki(nM) |
| 1 |
90 |
| 2 |
30 |
| 3 |
49 |
| 4 |
0.24 |
| 5 |
9 |
| 6 |
9 |
[0048] The compounds of general formula I may be administered orally, topically, parenterally,
by inhalation or spray or rectally in dosage unit formulations containing conventional
non-toxic pharmaceutically acceptable carriers, adjuvants and vehicles. The term parenteral
as used herein includes subcutaneous injections, intravenous, intramuscular, intrasternal
injection or infusion techniques. In addition, there is provided a pharmaceutical
formulation comprising a compound of general formula I and a pharmaceutically acceptable
carrier. One or more compounds of general formula I may be present in association
with one or more non-toxic pharmaceutically acceptable carriers and/or diluents and/or
adjuvants and if desired other active ingredient. The pharmaceutical compositions
containing compounds of general formula I may be in a form suitable for oral use,
for example, as tablets, troches, lozenges, aqueous or oily suspensions. dispersible
powders or granules, emulsion, hard or soft capsules, or syrups or elixirs.
[0049] Compositions intended for oral use may be prepared according to any method known
to the art for the manufacture of pharmaceutical compositions and such compositions
may contain one or more agents selected from the group consisting of sweetening agents,
flavoring agents, coloring agents and preserving agents in order to provide pharmaceutically
elegant and palatable preparations. Tablets contain the active ingredient in admixture
with non-toxic pharmaceutically acceptable excipients which are suitable for the manufacture
of tablets. These excipients may be for example, inert diluents, such as calcium carbonate,
sodium carbonate, lactose, calcium phosphate or sodium phosphate; granulating and
disintegrating agents, for example, corn starch, or alginic acid; binding agents,
for example starch, gelatin or acacia, and lubricating agents, for example magnesium
stearate, stearic acid or talc. The tablets may be uncoated or they may be coated
by known techniques to delay disintegration and absorption in the gastrointestinal
tract and thereby provide a sustained action over a longer period. For example, a
time delay material such as glyceryl monosterate or glyceryl distearate may be employed.
[0050] Formulations for oral use may also be presented as hard gelatin capsules wherein
the active ingredient is mixed with an inert solid diluent, for example, calcium carbonate,
calcium phosphate or kaolin, or as soft gelatin capsules wherein the active ingredient
is mixed with water or an oil medium, for example peanut oil, liquid paraffin or olive
oil.
[0051] Aqueous suspensions contain the active materials in admixture with excipients suitable
for the manufacture of aqueous suspensions. Such excipients are suspending agents,
for example sodium carboxymethylcellulose, methylcellulose, hydropropylmethylcellulose,
sodium alginate, polyvinylpyrrolidone, gum tragacanth and gum acacia; dispersing or
wetting agents may be a naturally-occurring phosphatide, for example, lecithin, or
condensation products of an alkylene oxide with fatty acids, for example polyoxyethylene
stearate, or condensation products of ethylene oxide with long chain aliphatic alcohols,
for example heptadecaethyleneoxycetanol, or condensation products of ethylene oxide
with partial esters derived from fatty acids and a hexitol such as polyoxyethylene
sorbitol monooleate, or condensation products of ethylene oxide with partial esters
derived from fatty acids and hexitol anhydrides, for example polyethylene sorbitan
monooleate. The aqueous suspensions may also contain one or more preservatives, for
example ethyl, or n-propyl p-hydroxybenzoate, one or more coloring agents, one or
more flavoring agents, and one or more sweetening agents, such as sucrose or saccharin.
[0052] Oily suspensions may be formulated by suspending the active ingredients in a vegetable
oil, for example arachis oil, olive oil, sesame oil or coconut oil, or in a mineral
oil such as liquid paraffin. The oily suspensions may contain a thickening agent,
for example beeswax, hard paraffin or cetyl alcohol. Sweetening agents such as those
set forth above, and flavoring agents may be added to provide palatable oral preparations.
These compositions may be preserved by the addition of an anti-oxidant such as ascorbic
acid.
[0053] Dispersible powders and granules suitable for preparation of an aqueous suspension
by the addition of water provide the active ingredient in admixture with a dispersing
or wetting agent, suspending agent and one or more preservatives. Suitable dispersing
or wetting agents and suspending agents are exemplified by those already mentioned
above. Additional excipients, for example sweetening, flavoring and coloring agents,
may also be present.
[0054] Pharmaceutical compositions of the invention may also be in the form of oil-in-water
emulsions. The oily phase may be a vegetable oil, for example olive oil or arachis
oil, or a mineral oil, for example liquid paraffin or mixtures of these. Suitable
emulsifying agents may be naturally-occurring gums, for example gum acacia or gum
tragacanth, naturally-occuring phosphatides, for example soy bean, lecithin, and esters
or partial esters derived from fatty acids and hexitol, anhydrides, for example sorbitan
monoleate, and condensation products of the said partial esters with ethylene oxide,
for example polyoxyethylene sorbitan monoleate. The emulsions may also contain sweetening
and flavoring agents.
[0055] Syrups and elixirs may be formulated with sweetening agents, for example glycerol,
propylene glycol, sorbitor or sucrose. Such formulations may also contain a demulcent,
a preservative and flavoring and coloring agents. The pharmaceutical compositions
may be in the form of a sterile injectable aqueous or oleaginous suspension. This
suspension may be formulated according to the known an using those suitable dispersing
or wetting agents and suspending agents which have been mentioned above. The sterile
injectable preparation may also be sterile injectable solution or suspension in a
non-toxic parentally acceptable diluent or solvent. for example as a solunon in 1,3-butanediol.
Among the acceptable vehicles and soivents that may be employed are water. Riager's
solution and isotonic sodium chloride soiunon. In addition. Sterile, fixed oils are
conventionally employed as a solvent or suspending medium. For this purpose any bland
fixed oil may be employed including synthetic mono or diglycerides. In addition, farry
acids such as oleic acid find use in the preparation of injectables.
[0056] The compounds of general formula I may also be administered in the form of suppositories
for rectal administration of the drug. These compositions can be prepared by mixing
the drug with a suitable non-irritaring excipient which is solid at ordinary temperatures
but liquid at the rectal temperature and will therefore melt in the rectum to release
the drug. Such materials are cocoa butter and polyethylene glycols.
[0057] Compounds of general formula I may be administered parenterally in a sterile medium.
The drug, depending on the vehicle and concentration used, can either be suspended
or dissolved in the vehicle. Advantageously, adjuvants such as local anaesthetics,
preservatives and buffering agents can be dissolved in the vehicle.
[0058] Dosage levels of the order of from about 0.1 mg to about 140 mg per kilogram of body
weight per day are useful in the treatment of the above-indicated conditions (about
0.5 mg to about 7 g per patient per day). The amount of active ingredient that may
be combined with the carrier materials to produce a single dosage form will vary depending
upon the host treated and the particular mode of administration. Dosage unit forms
will generally contain between from about 1 mg to about 500 mg of an active ingredient.
[0059] It will be understood, however, that the specific dose level for any particular patient
will depend upon a variety of factors including the activity of the specific compound
employed, the age, body weight, general health, sex, diet, time of administration,
route of administration, and rate of excretion, drug combination and the severity
of the particular disease undergoing therapy.
[0060] An illustration of the preparation of compounds of the present invention is given
in Scheme I.

where:
Ar is G
where G, n, R
3, R
4, R
5, and R
6 are as defined above.
[0061] Those having skill in the art will recognize that the starting materials may be varied
and additional steps employed to produce compounds encompassed by the present invention,
as demonstrated by the following examples.
[0062] In some cases procection of certain reactive functionalities may be necessary to
achieve some of the above transformations. In general the need for such procecting
groups will be apparent to those skilled in the art of organic synthesis as well as
the conditions necessary to attach and remove such groups. Representative examples
of the preparation of various protected aniline derivatives are shown in Schemes II
(1), (2) and (3).

[0063] The invention is illustrated further by the following examples which are not to be
construed as limiting the invention. Those compounds which are not encompassed by
the claims are described for comparative purposes only.
Example 1
Preparation of starting materials and intermediates
[0064] The starting materials and various intermediates may be obtained from commercial
sources, prepared from commercially available organic compounds, or prepared using
well known synthetic methods.
[0065] Representative examples of methods for preparing intermediates of the invention are
set forth below.
1. 4-oxo-4,5,6,7-tetrahydrobenzofuran-3-carboxylic acid
[0066]

[0067] 4-Oxo-4,5,6,7-tetrahydrobenzofuran-3-carboxylic acid is prepared according to the
following procedure. Potassium hydroxide (345 g, 6.15 mol) is dissolved in methyl
alcohol (1.2 L) then cooled in an ice water bath. A solution of cyclohexanedione (714
g, 6.15 mol) in methyl alcohol (1.2 L), dissolved using gentle heat, is added dropwise
to the cold, stirred KOH solution over 2 h. A solution of ethyl bromopyruvate (1200
g, 6.15 mol) in methyl alcohol (1.5 L) is then added dropwise over 3 h. The reaction
mixture is allowed to reach ambient temperature and stirred an additional 14.5 h.
While cooling the reaction mixture via a water bath, a solution of sodium hydroxide
(492 g. 12.4 mol) in water (984 mL) is added dropwise over 2.5 h. After stirring at
ambient temperature for 15.5 h, the reaction mixture is cooled in an ice water bath.
500 g of ice added, and the resulting mixture is then acidified with concentrated
hydrochloric acid (
ca 1L) to pH 1. The reaction mixture is concentrated
in vacuo, 1L of ice is added, and the precipitate filtered, washed with ice water (3 X 200
mL), and then dried in a vacuum oven at 75° C to afford 4-oxo-4,5,6,7-tetrahydrobenzofuran-3-carboxylic
acid (560 g), m.p. 137-138° C.
2. 4-oxo-4,5,6,7-tetrahydroindole-3-carboxylate
[0068]

[0069] To a stirred mixture of 4-oxo-4,5,6,7-tetrahydrobenzofuran-3-carboxylic acid (640
g, 3.55 mol), pocessium carbonate (1.7 kg, 10.65 mol) and cesium carbonate (100 g,
0.32 mol) in N,N-dimethylformamide (9.0 L) is added iodoethane (1250 g, 8.01 mol).
The mixture is heated at 60° C for 2 h. After cooling to ambient temperature, the
mixture is filtered, the solid is rinsed with ethyl acetate, and the filtrate concentrated
in vacuo. Water (2 L) is added then extracted with ethyl acetate (2 X 2L); the combined organic
extracts are washed with brine, dried over magnesium sulfate, filtered, and concentrated
in vacuo to give ethyl 4-oxo-4,5,6,7-tetrahydrobenzofuran-3-carboxylic acid (642 g). A mixture
of this ester (640 g. 3.07 mol) and ammonium acetate (426 g, 5.53 mol) in N,N-dimethylformamide
(320 mL) is heated to 100° C for 2 h. The reaction mixture is concentrated
in vacuo , ice water (2.5L) is added, and extracted with dichloromethane (2 X 3L); the combined
organic extracts are washed with brine, dried over magnesium sulfate, filtered, and
concentrated
in vacuo to give ethyl 4-oxo-4,5,6,7-tetrahydroindole-3-carboxylate (357 g). A mixture of
this ester (170 g, 0.82 mol) in ethyl alcohol (250 mL) and a solution of sodium hydroxide
(165 g, 4.1 mol) in water (1 L) is heated at reflux for 1 h, then cooled in an ice
water bath. Concentrated hydrochloric acid (350 mL) is added dropwise, the precipitate
collected by filtration, rinsed with ice water (3 X), and dried in a vacuum oven at
75° C to afford 4-oxo-4,5,6,7-tetrahydroindole-3-carboxylate (125 g). m.p. 269-270°
C.
3. 4-[N-trifluoroacetyl-(methylaminomethyl)aniline
[0070]

[0071] A solution of p-nitrobenzylbromide (5.40 g. 25 mmol) in acetonitrile (60 ml) is added
dropwise to a stirred solution of aqueous methylamine (65 mL, 40 wt.%. 0.75 mol) in
acetonitrile (50 mL) at 0°. After stirring an additional 15 minutes, the solution
is poured into brine and extracted 2X with dichloromethane. The combined organic layers
are washed with brine, dried over sodium sulfate, filtered, and concentrated
in vacuo to give 4-(methylaminomethyl)nitrobenzene (4.04g).
[0072] A solution of trifluoracetic anhydride (4.46 mL, 31.6 mmol) in dichloromethane (10
mL) is added dropwise to a stirred solution of 4-(methylaminomethyl)nitrobenzene (4.04
g, 24.3 mmol) and pyridine (2.16 mL, 26.7 mmol) in dichloromethane (25 mL) at 0°.
After stirring an additional 30 minutes, the solution is poured into aqueous 3.6N
hydrochloric acid and extracted with dichloromethane. The organic layer is washed
with brine, dried over sodium sulfate, filtered, and concentrated
in vacuo to give 4-[N-trifluoroacetyl-(methylaminomethyl)nitrobenzene (6.55 g).
[0073] Crude 4-[N-trifluoroacetyl-(methylaminomethyl)]nitrobenzene (6.55 g) is dissolved
in ethyl alcohol (75 mL), added to 10% Pd/C (655 mg) in a Parr bottle and shaken under
Hydrogen (50 PSI) for 4 hours. The mixture is filtered through Celite and concentrated
in vacuo to give 4-[N-trifluoroacetyl-(methylaminomethyl)aniline (5.75 g).
[0074] The 3-aminoalkylanilines are prepared in a similar fashion according to the procedure
generally set forth in part (1) of Scheme II above.
4. 4-amino-(N-trifluoroacetyl-2-methylaminoethoxy)benzene
[0075]

[0076] A mixture of p-nitrophenol (1.39 g, 10 mmol), 2-chloroethoxytrimethylsilane (3.2
ml, 20 mmol), potassium carbonate (4.15 g, 30 mmol), cesium carbonate (163 mg, 0.5
mmol), and sodium iodide (149 mg, 1 mmol) in N,N-dimethylformamide (10 ml) is heated
at 75° for 19.5 hours. After cooling to ambient temperature, the mixture is diluted
with ethyl acetate and filtered. The filtrate is washed with saturated aqueous sodium
bicarbonate, then washed 2X with water. dried over magnesium sulfate, filtered, concentrated
in vacuo, and purified on Silica gel (1:1 ethyl acetate / hexanes) to give 4-nitro-(2-Hydroxyethoxy)benzene
(1.25 g).
[0077] 4-Nitro-(2-Hydroxyethoxy)benzene (1.13 g, 6.2 mmol) in thionyl chloride (10 mL) is
heated at reflux for 3 hours then concentrated
in vacuo. After cooling the residue in an ice water bath, saturated aqueous sodium bicarbonate
is added and the precipitate collected, rinsed with water, and dried to give 4-nitro-(2-chloroethoxy)benzene
(909 mg).
[0078] A mixture of 4-nitro-(2-chloroethoxy)benzene (781 mg, 3.9 mmol) and aqueous methylamine
(15 mL, 40 wt. %) in isopropyl alcohol (15 mL) is heated in a sealed tube at 100°
for 4 hours. After cooling in an ice water bath, the mixtured is poured into brine
and extracted 2X with dichloromethane, dried over sodium sulfate, filtered, and concentrated
in vacuo to give 4-nitro-(2-methylaminoethoxy)benzene (697 mg).
[0079] To a solution of 4-nitro-(2-methylaminoethoxy)benzene (766 mg, 3.9 mmol) and pyridine
(0.35 mL, 4.29 mmol) in dichloromethane (5 mL) at 0° C is added dropwise trifluroacetic
anhydride (0.72 mL, 5.08 mmol). After stirring at 0° C for 3.5 hours, the mixture
is poured into aqueous 1.2 N hydrochloric acid and extracted with dichloromethane.
The organic layer is washed with saturated aqueous sodium bicarbonate then brine,
dried over sodium sulfate, filtered, and concentrated
in vacuo to give 4-nitro-(N-trifluoroacetyl-2-methylaminoethoxy)benzene (1.06 g). Treatment
of this nitro compound with 10% Palladium on carbon in ethyl alcohol (18 mL) in a
Part bottle under Hydrogen (55 PSI) for 2.25 hours affords 4-amino-(N-trifluoroacetyl-2-methylaminoethoxy)benzene
(709 mg).
Example 2
[0080]

Compound 1
[0081] To a stirred solution of 4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxylic acid (100
mg, 0.6 mmol) and triethylamine (0.15 mL, 1.1 mmol) in N,N-dimethylformamide (5 mL)
at 0° C is added ethyl chloroformate (0.1 mL, 1.1 mmol). After stirring an additional
1 hour, 3-(N-trifluoroacetyl-(methylaminomethyl)aniline (0.3 g, 1.3 mmol) is added.
The reaction mixture is stirred for 4 hours, then poured into saturated aqueous ammonium
chloride and extracted 2X with ethyl acetate. The combined organic layers are washed
sequentially with brine, aqueous 2N hydrochloric acid, then brine, dried over sodium
sulfate, filtered, and concentrated
in vacuo. To the residue is added 15% aqueous potassium bicarbonate (5 mL) and methyl alcohol
(3 mL), then heated at reflux for 3 hours. After cooling, the reaction mixture is
extracted with ethyl acetate, the organic layer dried over sodium sulfate, filtered,
and concentrated
in vacuo to give N-[3-(methylaminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide.
m.p. 130-132°C.
Example 3
[0082] The following compounds are prepared essentially according to the procedures described
in Examples 1 and 2:
(a) N-[3-(Methylaminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide
(Compound 1); mp 130-132° C.
(b) N-[4-(Hydroxyethoxy)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 245-247° C.
(c) N-[4-(Methoxyethoxy)phenyl]-4-oxo- 4,5,6,7-tetrahydro-1H-indole-3-carboxamide
(d) N-[-4-(3-Methylaminoethoxy)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 233-236° C.
(e) N-[4-(Methoxymethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 164-165° C.
(f) N-[4-(Aminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide (Compound
6): mp >200° C (d).
(g) N-[4-(Methylaminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 217-219° C.
(h) N-[2-Fluoro-4-(methylaminomethyl)phenyl]-4-oxo- 4,5,6,7-tetrahydro-1H-indole-3-carboxamide
(Compound 3); mp 186-188°C.
(i) N-{4-[N-acetyl-(methylaminomethyl)phenyl]}-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 204-206° C.
(j) N-[4-(Ethylaminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 194-195° C.
(k) N-[4-(Isopropylaminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 164-166° C.
(l) N-[4-(Cyclopropylaminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide
(Compound 5); mp 171-173° C.
(m) N-[4-(Dimethylaminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro- 1H-indole-3-carboxamide;
mp 216-218°C.
(n) N-[4-(2-Aminoethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-ndole-3-carboxamide; mp
85-90° C.
(o) N-[4-(2-Methylaminoethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide
(Compound 4); mp 197-200° C.
(p) N-[4-(Methoxymethyl)phenyl]-4-oxo-5,5-dimethyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide.
(q) N-[4-(Methylaminomethyl)phenyl-4-oxo-1,4,5,6,7,8-hexahydro-cyclohepta[b]pyrrole-3-carboxamide
(Compound 2); mp 173-175° C.
(r) N-{4-[N-acetyl-(methylaminomethyl)phenyl]}-4-oxo-6-methyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide:
mp 159-161°C.
(s) N-[4-(Methylaminoomethyl)phenyl]-4-oxo-6-methyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 217-219° C.
(t) N-[4-(Hydroxymethyl)phenyl]-4-oxo-6-methyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 260-262° C.
(u) N-[4-(2-Hydroxyethoxy)phenyl]-4-oxo-6-methyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide
mp 245-247° C.
(v) N-[3-(Methylaminomethyl)phenyl]-4-oxo-6-methyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 172-174° C.
(w) N-[4-(2-Hydroxyethoxy)phenyl]-4-oxo-6,6-dimethyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 268-270° C.
(x) N-[3-(Hydroxymethyl)phenyl]-4-oxo-6,6-dimethyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide
mp 233-235°C.
(y) N-[4-(Hydroxymethyl)phenyl]-4-oxo-6,6-dimethyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 245-247°C.
(z) N-[4-(Methylaminomethyl)phenyl]-4-oxo-6,6-dimethyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 230-232°C.
(aa) N-(1,3-Benzodioxol-5-yl)-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide mp
248-249° C.
(bb) N-(2,3-Dihydro-1,4-benzodioxin-6-yl)-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 254-256° C.
(cc) N-(3,4-Dihydro-2H-1,4-benzoxazin-6-yl)-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 216°C.
(dd) N-(2,2-Dimethyl-1,3-benzodioxol-5-yl)-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide.
(ee) N-(2,3-Dihydro-1H-indol-5-yl)-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 283-286°C.
(ff) N-(2,3-Dihydro-1H-indol-6-yl)-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 322-323°C.
(gg) N-(1,3-Benzodioxol-5-yl)-4-oxo-5,5-dimethyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide.
(hh) N-(2,3-Dihydro-1,4-benzodioxin-6-yl)-4-oxo-5,5-dimethyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 241-243°C.
(ii) N-(4H-1,3-Benzodioxin-7-yl)-4-oxo-5,5-dimethyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 251-252°C.
(jj) N-(1,3-Benzodioxol-5-yl)-4-oxo-1,4,5,6,7,8-hexahydro-cyclohepta[b]pyrrole-3-carboxamide;
mp 210-212°C.
(kk) N-(2,3-Dihydro-1,4-benzodioxin-6-yl)-4-oxo-1,4,5,6,7,8-hexahydro-cyclohepta[b]pyrrole-3-carboxamide;
mp 222-223°C.
(ll) N-(2,2-Dimethyl-1,3-benzodioxol-5-yl)-4-oxo-6-methyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 155-157°C.
(mm) N-(1,3-Benzodioxol-5-yl)-4-oxo-6-methyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 297-299°C.
(nn) N-(2,3-Dihydro-1,4-benzodioxin-6-yl)-4-oxo-6-methyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 290-292°C.
(oo) N-(1,3-Benzodioxol-5-yl)-4-oxo-6,6-dimethyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 245-246° C.
(pp) N-(2,3-Dihydro-1,4-benzodioxin-6-yl)-4-oxo-6,6-dimethyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide.
(qq) N-(4H-1,3-Benzodioxin-7-yl)-4-oxo-6,6-dimethyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 234-236° C.
(rr) N-[(2-Hydroxythoxy)pyrid-5-yl]-4-oxo-6-methyl-4,5,6,7-tetrahydro-1H-indole-3-carboxamide;
mp 221-223° C.
(ss) N-(3,4-Dihydro-2H-1,4-benzoxazin-7-yl)-4-oxo-4,5,6,7-tetrahydro-1H-indole-3-carboxamide.
Example 4
1. Verbindung der Formel

oder die pharmazeutisch verträglichen nicht toxischen Salze davon, worin: G

worin R
a und R
b unabhängig voneinander einem Wasserstoffatom oder einer C
1-6-Alkylgruppe entsprechen und e ein ganze Zahl von 2-3 ist,
oder

worin R
a einem Wasserstoffatom, einer C
1-6-Alkyl- oder C
3-7-Cycloalkylgruppe entspricht,
R
b einem Wasserstoffatom, einer C
1-6-Alkyl- oder Acylgruppe entspricht,
Y und Y' unabhängig voneinander einem Wasserstoff- oder Halogenatom entsprechen, und
e eine ganze Zahl von 1-3 ist,
entspricht,
T ein Halogen-, Wasserstoffatom, eine Hydroxyl-, Amino- oder C
1-6-Alkoxygruppe ist,
X ein Wasserstoffatom, eine Hydroxyl- oder C
1-6-Alkylgruppe ist,

einer Kohlenstoffkette entspricht, die gegebenenfalls mit Wasserstoff-, Halogenatom
oder C
1-6-Alkylgruppe substituiert ist, wobei n den Wert 0, 1, 2 oder 3 aufweist,
R
3, R
4, R
5 und R
6 gleich oder verschieden sind und ausgewählt sind aus Wasserstoffatom, C
1-6-Alkyl-, -COR
11- oder -CO
2R
11-Gruppe, wobei R
11 eine C
1-6-Alkyl- oder C
3-7-Cycloalkylgruppe ist, oder -CONR
12R
13-Gruppe, wobei R
12 und R
13 unabhängig voneinander ausgewählt sind aus Wasserstoffatom, C
1-6-Alkyl-, C
3-7-Cycloalkyl-, Phenyl-, 2-, 3- oder 4-Pyridylgruppe, oder NR
12R
13 einer heterocyclischen Gruppe entspricht, die eine Morpholinyl-, Piperidinyl-, Pyrrolidinyl-
oder N-Alkylpiperazinylgruppe ist, oder
R
3-R
4 zusammen genommen werden können, um eine cyclische Gruppe mit 3-7 Kohlenstoffatomen
zu bilden, oder
R
5-R
6 zusammen genommen werden können, um eine cyclische Gruppe mit 3-7 Kohlenstoffatomen
zu bilden, und
wobei jede Alkylgruppe, die einen R
3-, R
4-, R
5- oder R
6-Substituenten oder einen Teil davon bildet, unabhängig durch Hydroxy- oder Mono-
oder Dialkylaminogruppe substituiert sein kann, wobei jede Alkylgruppe unabhängig
eine C
1-6-Alkyl- oder C
3-7-Cycloalkylgruppe ist.
2. Verbindung gemäß Anspruch 1 der Formel:

worin
R
a und R
b unabhängig voneinander einem Wasserstoffatom oder einer C
1-6-Alkylgruppe entsprechen,
e eine ganze Zahl von 2-3 ist und
R
3, R
5 und R
6 unabhängig voneinander einem Wasserstoffatom oder einer C
1-6-Alkylgruppe entsprechen.
3. Verbindung gemäß Anspruch 1 der Formel:

worin G

entspricht,
R
a einem Wasserstoffatom, einer C
1-6-Alkyl- oder C
3-7-Cycloalkylgruppe entspricht,
R
b einem Wasserstoffatom, einer C
1-6-Alkyl- oder Acylgruppe entspricht,
Y und Y' unabhängig voneinander einem Wasserstoff- oder Halogenatom entsprechen, und
e eine ganze Zahl von 1-3 ist.
4. Verbindung gemäß Anspruch 3 der Formel:

worin R
3, R
5 und R
6 unabhängig voneinander einem Wasserstoffatom oder einer C
1-6-Alkylgruppe entsprechen.
5. Verbindung gemäß Anspruch 1, ausgewählt aus der Gruppe bestehend aus N-[3-(Methylaminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indol-3-carboxamid,
N-[4-(Aminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indol-3-carboxamid, N-[4-(Methylaminomethyl)phenyl]-4-oxo-4,5,6,7-tetra-hydro-1H-indol-3-carboxamid,
N-[2-Fluor-4-(methylaminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indol-3-carboxamid,
N-{4-[N-Acetyl(methylaminomethyl)phenyl]}-4-oxo-4,5,6,7-tetrahydro-1H-indol-3-carboxamid,
N-[4-(Ethylaminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indol-3-carboxamid, N-[4-(Isopropylaminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indol-3-carboxamid,
N-[4-(Cyclopropylaminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indol-3-carboxamid,
N-[4-(Dimethylaminomethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indol-3-carboxamid,
N-[4-(2-Aminoethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indol-3-carboxamid, N-[4-(2-Methylaminoethyl)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indol-3-carboxamid,
N-[4-(Methylaminomethyl)phenyl]-4-oxo-1,4,5,6,7,8-hexahydrocyclohepta[b]-pyrrol-3-carboxamid,
N-{4-[N-Acetyl(methylaminomethyl)phenyl]}-4-oxo-6-methyl-4,5,6,7-tetrahydro-1H-indol-3-carboxamid,
N-[4-(Methylaminomethyl)phenyl]-4-oxo-6-methyl-4,5,6,7-tetrahydro-1H-indol-3-carboxamid,
N-[3-(Methylaminomethyl)phenyl]-4-oxo-6-methyl-4,5,6,7-tetrahydro-1H-indol-3-carboxamid,
N-[4-(Methylaminomethyl)phenyl]-4-oxo-6,6-dimethyl-4,5,6,7-tetrahydro-1H-indol-3-carboxamid
und N-[4-(3-(Methylaminoethoxy)phenyl]-4-oxo-4,5,6,7-tetrahydro-1H-indol-3-carboxamid.
6. Verbindung gemäß einem der Ansprüche 1 bis 5 als Pharmazeutikum.
7. Verbindung gemäß Anspruch 6, die zum Binden an GABAa-Rezeptoren geeignet ist.
8. Verbindung gemäß Anspruch 6 oder 7, die zur Diagnose und Behandlung von Angst-, Schlaf-
und Anfallserkrankungen, Überdosis mit Benzodiazepin-Arzneimitteln und zur Verbesserung
des Gedächtnisses geeignet ist.
9. Verwendung einer Verbindung gemäß einem der Ansprüche 1 bis 5 zur Herstellung einer
pharmazeutischen Zusammensetzung zum Behandeln von Angst-, Schlaf- und Anfallserkrankungen,
Überdosis mit Benzodiazepin-Arzneimitteln und zur Verbesserung des Gedächtnisses.
10. Pharmazeutische Zusammensetzung, die eine Verbindung gemäß einem der Ansprüche 1 bis
8 umfasst.
1. Composé de formule:

ou ses sels non-toxiques pharmaceutiquement acceptables, où G représente

où R
a et R
b représentent indépendamment l'hydrogène ou un alkyle en C
1-6; et e est un entier valant 2-3;
ou

où R
a représente l'hydrogène, un alkyle en C
1-6 ou un cycloalkyle en C
3-7;
R
b représente l'hydrogène, un alkyle en C
1-6 ou un acyle;
Y et Y' représentent indépendamment l'hydrogène ou un halogène; et
e est un entier valant 1-3;
T est un halogène, l'hydrogène, un hydroxyle, un amino ou un alcoxy en C
1-6;
X est l'hydrogène, un hydroxyle, ou un alkyle en C
1-6;

représente une chaîne carbonée substituée en option par de l'hydrogène, un halogène
ou un alkyle en C
1-6; tandis que n est 0, 1,2 ou 3;
R
3, R
4, R
5 et R
6 sont identiques ou différents et sont choisis parmi l'hydrogène, un alkyle en C
1-6, -COR
11 ou -CO
2R
11 tandis que R
11 est un alkyle en C
1-6 ou un cycloalkyle en C
3-7; ou -CONR
12R
13 où R
12 et R
13 sont choisis indépendamment parmi l'hydrogène, un alkyle en C
1-6, un cyloalkyle en C
3-7, le phényle, le 2-, 3- ou 4-pyridyle, ou NR
12R
13 représente un groupe hétérocyclique qui est le morpholinyle, le pipéridinyle, le
pyrrolidinyle ou un N-alkyl pipérazinyle; ou
R
3-R
4 peuvent être pris ensemble pour former une portion cyclique ayant 3-7 atomes de carbone;
ou
R
5-R
6 peuvent être pris ensemble pour former une portion cyclique ayant 3-7 atomes de carbone;
et
où chaque groupe alkyle formant un substituant R
3, R
4, R
5 ou R
6, ou une portion de celui-ci peut être substitué indépendamment par un hydroxy ou
un mono- ou dialkylamino où chaque alkyle est indépendamment un alkyle en C
1-6 ou un cycloalkyle en C
3-7.
2. Composé selon la revendication 1, ayant la formule:

où
R
a et R
b représentent indépendamment l'hydrogène ou un alkyle en C
1-6;
e est un entier valant 2-3; et
R
3, R
5 et R
6 représentent indépendamment l'hydrogène ou un alkyle en C
1-6.
3. Composé selon la revendication 1, ayant la formule:

où G représente

R
a représente l'hydrogène, un alkyle en C
1-6 ou un cycloalkyle en C
3-7;
R
b représente l'hydrogène, un alkyle en C
1-6 ou un acyle;
Y et Y' représentent indépendamment l'hydrogène ou un halogène; et
e est un entier valant 1-3.
4. Composé selon la revendication 3, ayant la formule:

où R
3, R
5 et R
6 représentent indépendamment l'hydrogène ou un alkyle en C
1-6.
5. Composé selon la revendication 1, choisi dans le groupe consistant en
N-[3-(méthylaminométhyl)phényl]-4-oxo-4,5,6,7-tétrahydro-1H-indole-3-carboxamide,
N-[4-(aminométhyl)phényl]-4-oxo-4,5,6,7-tétrahydro-1H-indole-3-carboxamide,
N-[4-(méthylaminométhyl)phényl]-4-oxo-4,5,6,7-tétrahydro-1H-indole-3-carboxamide,
N-[2-fluoro-4-(méthylaminométhyl)phényl]-4-oxo-4,5,6,7-tétrahydro-1H-indole-3-carboxamide,
N-{4-[N-acétyl(méthylaminométhyl)phényl]}-4-oxo-4,5,6,7-tétrahydro-1H-indole-3-carboxamide,
N-[4-(éthylaminométhyl)phényl]-4-oxo-4,5,6,7-tétrahydro-1H-indole-3-carboxamide,
N-[4-(isopropylaminométhyl)phényl]-4-oxo-4,5,6,7-tétrahydro-1H-indole-3-carboxamide,
N-[4-(cyclopropylaminométhyl)phényl]-4-oxo-4,5,6,7-tétrahydro-1H-indole-3-carboxamide,
N-[4-(diméthylaminométhyl)phényl]-4-oxo-4,5,6,7-tétrahydro-1H-indole-3-carboxamide,
N-[4-(2-aminoéthyl)phényl]-4-oxo-4,5,6,7-tétrahydro-1H-indole-3-carboxamide,
N-[4-(2-méthylaminoéthyl)phényl]-4-oxo-4,5,6,7-tétrahydro-1H-indole-3-carboxamide,
N-[4-(méthylaminométhyl)phényl]-4-oxo-1,4,5,6,7,8-hexahydro-cyclohepta[b]pyrrole-3-carboxamide,
N-{4-[N-acétyl-(méthylaminométhyl)phényl]}-4-oxo-6-méthyl-4,5,6,7-tétrahydro-1H-indole-3-carboxamide,
N-[4-(méthylaminométhyl)phényl]-4-oxo-6-méthyl-4,5,6,7-tétrahydro-1H-indole-3-carboxamide,
N-[3-(méthylaminométhyl)phényl]-4-oxo-6-méthyl-4,5,6,7-tétrahydro-1H-indole-3-carboxamide,
N-[4-(méthylanùnométhyl)phényl]-4-oxo-6,6-dùnéthyl-4,5,6,7-tétrahydro-1H-indole-3-carboxamide
et
N-[4-(3-méthylaminoéthoxy)phényl]-4-oxo-4,5,6,7-tétrahydro-1H-indole-3-carboxamide.
6. Composé selon l'une quelconque des revendications 1 à 5, en tant que produit pharmaceutique.
7. Composé selon la revendication 6, convenant pour la liaison des récepteurs GABAa.
8. Composé selon les revendications 6 ou 7, convenant pour le diagnostique et le traitement
de l'anxiété, des troubles du sommeil et des crises, de l'overdose avec des drogues
de type benzodiazépine et pour l'amélioration de la mémoire.
9. Utilisation d'un composé selon l'une quelconque des revendications 1 à 5 pour la préparation
d'une composition pharmaceutique pour le traitement de l'anxiété, des troubles du
sommeil et des crises, de l'overdose avec des drogues de type benzodiazépine et pour
l'amélioration de la mémoire.
10. Composition pharmaceutique comprenant un composé selon l'une quelconque des revendications
1 à 8.